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Updated: May 5, 2026

A Guide to Production, Crystallization, and Structure Determination of Human IKK1/α
Published on: November 2, 2018
Molecular insights on TNKS1/TNKS2 and inhibitor-IWR1 interactions
Palani Kirubakaran1, Gugan Kothandan, Seung J Cho
1Department of Bioinformatics, Science Block, Alagappa University, Karaikudi - 630 004, Tamil Nadu, India. mkbioinformatics@gmail.com.
Abstract:
Tankyrases (TNKS) belong to the poly(ADP-ribose)polymerase (PARP) protein super family and play a vital role in the Wnt/β-catenin signaling pathway. TNKS is a potential target for therapeutic intervention against various cancers, heritable diseases (e.g. cherubism) and implications in the replication of herpes simplex virus (HSV). The recent discovery of the structure of TNKS with an IWR1 inhibitor has provided insight into the binding modes which are specific for the TNKS protein which will aid in the development of drugs that are specific for the TNKS protein. The current study investigates molecular interactions between the induced pocket of TNKS1 and TNKS2 with an IWR1 compound using computational approaches. Molecular docking analysis of IWR1 at the induced pocket of TNKS1 and TNKS2 was performed. The resulting protein-ligand complexes were simulated for a timescale of 100 ns. Results revealed the stable binding of IWR1 at the induced pocket of TNKS1 and TNKS2 proteins. Apart from active site amino acids, π-π stack paring interactions were also crucial for the protein-ligand binding and stability of the complex. Further, energy-optimized pharmacophore mapping was performed and the resulting pharmacophore model contained a four (TNKS1-IWR1) and five (TNKS2-IWR1) featured sites. Based on the pharmacophore models, the best inhibitors were screened from the ZINC natural product compound database and these could be used as potential drugs against TNKS1 and TNKS2.
Insights
Tankyrases (TNKS) are crucial in cancer and viral replication. This study used computational methods to analyze the IWR1 inhibitor
Area of Science:
- Biochemistry and Molecular Biology
- Pharmacology and Drug Discovery
- Structural Biology
Background:
- Tankyrases (TNKS) are part of the poly(ADP-ribose)polymerase (PARP) superfamily.
- TNKS are integral to the Wnt/β-catenin signaling pathway, implicated in cancers and viral infections.
- Understanding TNKS-inhibitor interactions is key for developing targeted therapeutics.
Purpose of the Study:
- To investigate the molecular interactions between TNKS1/TNKS2 and the IWR1 inhibitor.
- To utilize computational approaches to analyze binding modes and stability.
- To identify potential drug candidates for TNKS-targeted therapies.
Main Methods:
- Molecular docking simulations of IWR1 with TNKS1 and TNKS2 induced pockets.
- 100 ns molecular dynamics simulations of protein-ligand complexes.
- Energy-optimized pharmacophore modeling and screening against the ZINC database.
Main Results:
- Confirmed stable binding of IWR1 within the induced pockets of both TNKS1 and TNKS2.
- Identified crucial π-π stacking interactions contributing to binding stability.
- Developed pharmacophore models for TNKS1-IWR1 (4 features) and TNKS2-IWR1 (5 features).
Conclusions:
- IWR1 demonstrates stable binding to TNKS1 and TNKS2, highlighting its potential as a therapeutic lead.
- Computational analysis elucidated key binding interactions, informing future drug design.
- Screening identified novel natural products as potential inhibitors for TNKS-related diseases.
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